首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Spiral Waves in a Lattice Array of Josephson Junction Chaotic Oscillators with Flux Effects
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Spiral Waves in a Lattice Array of Josephson Junction Chaotic Oscillators with Flux Effects

机译:具有通量效应的约瑟夫森结混沌振荡器晶格阵列中的螺旋波

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摘要

Josephson junction devices play a significant role in various physical nonlinear systems because of their complex characteristics. Chaotic phenomenon in various types of Josephson junction devices has been widely reported, but many of those literature studies exempted the analysis into multistability and megastability features of the device. In this work, we investigate the network behaviour using a type of Josephson junction-memristor (JJM) device considering the feedback flux effects while modelling. We have considered both AC- and DC-type external excitation currents, and while considering the AC excitation, the system shows megastability (Ramakrishnan et al. 2020). When analysing the lattice layer network constructed with JJM excited by DC bias current, the network shows a turbulent behaviour thus forming spiral waves. This was not the case when we applied AC bias current for which the network showed a much pattern-like formation confirming localised areas of energy distribution. This energy distribution is due to the homogeneous states of the local nodes which are correlated by the respective periodicity plots. When we apply AC bias current with very low frequency, the network shows small areas of local spirals which are soon dissipated by the inhomogeneous nodes nearby. Thus, we could show that the external bias current plays an important role in the collective performance of the Josephson junction devices.
机译:约瑟夫森结器件由于其复杂的特性,在各种物理非线性系统中发挥着重要作用。各种类型的约瑟夫森结器件中的混沌现象已被广泛报道,但许多文献研究都排除了对器件的多稳态和兆稳态特征的分析。在这项工作中,我们使用一种约瑟夫森结忆阻器 (JJM) 器件研究了网络行为,同时考虑了建模时的反馈通量效应。我们考虑了交流和直流型外部激励电流,在考虑交流激励的同时,系统显示出超稳定性(Ramakrishnan 等人,2020 年)。在分析由直流偏置电流激发的JJM构建的晶格层网络时,该网络表现出湍流行为,从而形成螺旋波。当我们施加交流偏置电流时,情况并非如此,因为交流偏置电流的网络显示出一种类似模式的形成,确认了能量分布的局部区域。这种能量分布是由于局部节点的均匀状态,这些状态与各自的周期性图相关。当我们以非常低的频率施加交流偏置电流时,网络显示出小面积的局部螺旋,这些螺旋很快就会被附近的不均匀节点消散。因此,我们可以证明外部偏置电流在约瑟夫森结器件的集体性能中起着重要作用。

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